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US4135131A - Microwave time delay spectroscopic methods and apparatus for remote interrogation of biological targets - Google Patents

Microwave time delay spectroscopic methods and apparatus for remote interrogation of biological targets
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US4135131A
US4135131AUS05/842,137US84213777AUS4135131AUS 4135131 AUS4135131 AUS 4135131AUS 84213777 AUS84213777 AUS 84213777AUS 4135131 AUS4135131 AUS 4135131A
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time delay
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target
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Lawrence E. Larsen
John H. Jacobi
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United States Department of the Army
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Abstract

Remote interrogation of biological targets is accomplished in accordance h the present invention by method and apparatus wherein a microwave signal is generated which varies in frequency from a first frequency to a second frequency in a predetermined time period. The signal is divided into two signals, one of which is propagated through a test channel comprising a transmitting antenna for transmitting the signal through the target, and a receiving antenna for receiving the signal transmitted through the target, and the other of which is propagated through a reference channel providing a fixed time delay of propagation. The propagated signals are detected and mixed to produce a time delay spectrum wherein the frequency of each spectral line represents the instantaneous difference in the frequencies of the detected signals.

Description

FIELD OF THE INVENTION
The present invention relates generally to spectroscopy methods and apparatus, and more particularly to microwave time delay spectroscopy methods and apparatus for remote interrogation of biological targets.
DESCRIPTION OF THE PRIOR ART AND PRIOR ART STATEMENT
The essential requirements for a microwave measurement technique which is to be used to interrogate remote targets are that it be non-ambiguous for biologically relevant electrical path lengths, and that it be capable of discriminating between biologically relevant path length variations. Further, in order to have practical utility, the measurement technique should be easy to implement, and the data provided thereby must be readily interpretable.
When electromagnetic energy in the microwave region propagates through a biological target, the phase velocity and absorption thereof are a function of the permittivity, or dielectric constant, of the medium. Since the dielectric constant of a biological medium is a function of the composition and functional state of the tissue, the measurement of the total time delay and attenuation in microwave energy propagated through a biological target can theoretically be used to characterize the type, functional state, and thickness of the tissue through which the wave length travels. This capability is to be contrasted with the capability of X-ray interrogation techniques, where it is not possible to characterize tissue types by propagation time measurements. However, any time delay measurement technique which is utilized must provide unambiguous information between multiple paths whose differential propagation time is quite small.
For a number of reasons, localization and characterization of the dielectric properties of nonhomogeneous biological targets cannot be easily accomplished using only single frequency continuous wave (CW) measurements of reflection and transmission coefficients. One important reason is that the energy reaching the receiving attenna cannot be assumed to have followed a single ray path, and the multiple paths of the incident radiation to the receiver preclude simple assumptions about association of a transmission or reflection measurement with a single line integral. Also, a single frequency CW measurement is not capable of discriminating between tissue paths, the electrical length of which differ by more than one wavelength.
Other approaches which have been considered include pulsed radio frequency time delay and group delay measurement techniques. These approaches also suffer from several deficiencies. Pulse techniques require pulses with very fast rise time (100 picoseconds or less) in order to obtain adequate resolution. Such pulses require extremely broadband modulators, amplifiers, transmission lines, and detectors, which are complex and expensive. Group delay techniques are limited in the resolution which is obtainable by the noise and drift present in the network analyzers which must be utilized.
The present invention utilizes a time delay spectrum which is produced by linearly sweeping a microwave signal generator in frequency from a first frequency to a second frequency in a particular period. The generator output is divided into first and second signals which are propagated through a reference channel and a test channel, respectively, and the propagated signals are combined to produce a frequency spectrum which is representative of the differential time delay in the propagation of the signals through their respective channels.
A search of the prior art conducted in connection with the preparation of the present application developed the following patents in which a frequency varying signal and/or the combination of two signals are utilized in a measurement technique: U.S. Pat. No. 3,107,329 (McSkimin); U.S. Pat. No. 3,439,266 (Rogers); U.S. Pat. No. 3,851,244 (Mounce); U.S. Pat. No. Re. 29,008 (Ott). The McSkimin patent is an example of an application of pulse techniques and discloses a method wherein synchronism between two radio frequency pulses, one of which has been transmitted through a test channel, and one of which has been transitted through a reference channel, can be determined by comparison of the more centrally positioned portions of the pulses, so as to avoid the need for wide band apparatus and a high degree of resolution of each individual pulse. In accordance with one embodiment of the McSkimin method, the radio frequency of the pulses is continuously varied while the time interval between the pulses is varied until the signal produced by combining the pulses is at a substantially constant and clean maximum.
The Rogers patent discloses a heterodyne system for testing frequency sensitive electrical devices for insertion loss, return loss, and the like. The system is adapted to test devices which operate over a band of frequencies by the provision of a swept frequency generator which is coupled to a network having two transmission branches. One of the branches includes the device to be tested and the other branch includes an element which renders it electrically long with respect to the other branch. The outputs of the two transmission devices are heterodyned in a mixer to produce an intermediate frequency signal, which has an envelope indicative of a predetermined transmission characteristic of the device.
The Mounce patent discloses a microwave system of the heterodyne type for measuring moisture in sheet materials such as paper, wherein a detector is subjected both to strong signals from a frequency modulated source and to delayed and attenuated signals which have passed twice through the moisture containing material. The reason for doing so is that the strong signal acts as a local oscillator on the detector and forces it out of its high-impedance, high-noise, square-law region into a low-impedance, low-noise, linear region of operation.
The Ott patent discloses a machine for identification of persons wherein the frequency response characteristics of a portion of a person's body to sonic wave energy are compared with previously stored data for the person. Detector means are provided to detect the phase and amplitude of the signal transmitted through the person's body, and correlator means are provided to produce a transfer function representing an algebraic-trigonometric statement of the output divided by the input. In one embodiment a swept frequency source is employed and the output thereof may be applied to the correlator means for comparison with the signal transmitted through the person's body to obtain a transfer function having improved accuracy.
Applicants are also aware of U.S. Pat. No. 3,466,653 (Heyser), which discloses a time delay spectrometer for measuring the audio spectral response of an object which is located in an environment containing radiation reflecting bodies. In the Heyser device, a sound energy source is driven by a sweep frequency oscillator and the output of a sound detector is filtered by a tunable bandpass filter which is tuned or driven so as to follow the frequency of the sweep frequency oscillator by a delay equal to the time required for sound to travel a direct path from the source to the object and then to the detector. The filter thus passes only sound waves following the direct path and rejects sound waves which arrive at a later time when the filter has passed on to a new frequency. Heyser has also worked on ultrasonic imaging systems in which transmission variations through a target are measured. This work has been described in an article by Heyser and Le Croissette, 1 Ultrasound in Medicine and Biology 119-131.
Finally, applicants are aware of "CHIRP" radar techniques, wherein swept frequency radar signals are employed to reduce the peak power requirements of the radiated signal, and the delay time of the reflected signals is measured to determine target range. Reference is made to an article by Klauder, et al., appearing in Volume XXXIX of the Bell System Technical Journal (1960), at pages 745-808, for a discussion of CHIRP radar techniques.
The prior art cited hereinabove includes, in the opinion of the applicants, the closest prior art of which they are aware. However, there is no representation that no better art exists.
SUMMARY OF THE INVENTION
Remote interrogation of biological targets is accomplished in accordance with the present invention by time delay spectroscopy method and apparatus wherein a microwave signal is generated which varies in frequency from a first frequency to a second frequency in a predetermined time period. The signal is divided into two signals, one of which is propagated through a test channel comprising a transmitting antenna for transmitting the signal through the target, and a receiving antenna for receiving the signal transmitted through the target, and the other of which is propagated through a reference channel providing a fixed time delay of propagation. The propagated signals are detected and mixed to produce a time delay spectrum wherein the frequency of each spectral line represents the instantaneous difference in the frequencies of the detected signals. Preferably, the transmitting and receiving antennas and the target are immersed in water or other high dielectric medium.
In accordance with a further aspect of the invention the time delay spectrum is analyzed to determine the direct ray path through the target by selecting the spectral line having the highest amplitude at the lowest frequency.
Other features and advantages of the invention will be set forth in, or apparent from, the detailed description of a preferred embodiment found hereinbelow.
BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1 is a simplified block diagram of a time delay spectrometry system constructed in accordance with the present invention for remote interrogation of a biological target.
FIG. 2a is a front elevational view, partially cut away, of a perferred antenna embodiment for use in the system of FIG. 1.
FIG. 2b is a side elevational view, of the antenna shown in FIG. 2a.
FIG. 3 is a graphical representation of an illustrative time delay spectrum produced by a system similar to that shown in FIG. 1 with an antenna of the type shown in FIGS. 2a-2b.
FIG. 4 is a graphical representation of the time delay spectrums produced by a system similar to that shown in FIG. 1 during calibration thereof.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
Referring to FIG. 1, asystem 10 constructed according to the present invention for remote interrogation of a biological target comprises a sweptmicrowave oscillator 20 which is linearly swept by asweep generator 22 to produce a microwave signal which continuously varies in frequency from a first frequency f1 to a second frequency f2 in a predetermined time period TS.
System 10 further comprises apower divider 30 for dividing the output ofoscillator 20 into first and second propagation signals which are propagated, respectively, through atest channel 32 and areference channel 34.Test channel 32 comprises a transmittingantenna 36, a biological target A situated in free space, generally denoted 37, and a receivingantenna 38.Reference channel 34 provides a signal path having a fixed time delay.
Preferably, the biological target A, as well asantennas 36 and 38, are immersed in water, or other high dielectric constant environment. There are several advantages to a water environment with respect to remote interrogation of a biological target. First, the wavelength of the propagated signal is contracted, which improves the spatial resolution of the line scan. Second, coupling of energy into the target is improved. Third, discrimination of multipaths through the target is facilitated. Fourth, water has acceptable loss, inertness, and tissue match characteristics for biological targets.
System 10 also comprises aproduct detector 40 for detecting and multiplying, or mixing, the first and second propagation signals following propagation thereof through the correspondingchannels 32 and 34 to produce signals representing the time delay spectrum. In the case of sinusoids, the result of the mixing is sinusoids whose frequencies are the sum and difference, respectively, of the frequencies of the input signals. Alow pass filter 50 andFourier analyzer 60 are provided for processing of the time delay spectrum.Filter 50 rejects the spectrum signal whose frequency is the sum of the frequencies of the inputs todetector 40, and also acts as an anti-aliasing filter to reduce errors in the digital Fourier transform produced byanalyzer 60.Analyzer 60 digitizes the output offilter 50 and transforms the data to amplitude and phase information in the frequency domain.
Antennas 36 and 38 should preferably have as large a bandwidth, and as small an aperture, as possible, with a phase center that does not move with frequency. The need for a large bandwidth is a consequence of the swept frequency nature of the interrogating radiation. For a particular measurement, the bandwidth required is determined by the resolution needed, the sweep rates available inoscillator 20, the sweep range available, and the sampling rates provided by theanalyzer 60 which is utilized. A small aperture is desirable since if the aperture is too large compared to the area of the dielectric discontinuity being studied, it is not possible for the discontinuity to occlude the direct ray path betweenantennas 36 and 38, and a condition equivalent to multipath occurs which obscures the desired result. A constant phase center is preferred since movement of the phase center with frequency is equivalent to varying the separation between antennas, which has the effect of broadening the spectral lines in the time delay spectrum. A preferred antenna construction is depicted in FIGS. 2a-2b. The antenna, generally denoted 80, comprises a doubleridged waveguide 82, which is approximately 6.7 mm in length. The length ofwaveguide 82 represents a compromise between internal loss and ease of impedance matching, since a shorter length, on the order of 3 mm, would be preferable from the standpoint of power loss, but would not permit the use of tuning screws for impedance matching.
The top wall ofwaveguide 82 is provided with anaperture 83, through which thefeed probe 84 of a standard 50 ohm impedancecoaxial input cable 86 having a fluorocarbon dielectric such as "Teflon" is inserted by means of a standardfemale connector 85 mounted on the top surface ofwaveguide 82 and a standardmale connector 87 mounted on the end ofcable 86.
As shown, thetop ridge 90 ofwaveguide 82 extends longitudinally along the upper interior surface only from the front end ofwaveguide 82 to the perimeter ofaperture 83, while thebottom ridge 91 extends longitudinally along the entire lower interior surface from the front end to the rear end, ofwaveguide 82. In addition, as shown, the front ends of bothtop ridge 90 andbottom ridge 91 are bevelled. Twoholes 94 and 95, size 2-56, are provided in bottom ridge of 91 ofwaveguide 82 for receiving tuning screws 96 and 97, respectively, which are used to obtain a broader impedance match.Hole 94 is substantially coaxial withaperture 83. It is also noted that therear screw 96 does not protrude intowaveguide cavity 88, whilefront screw 97 does protrude intocavity 88.
Feed probe 84 is inserted intocavity 88 and is shorted to tuningscrew 96, and thus to thebottom ridge 91 ofwaveguide 82 in order to control the VSWR ofantenna 80. Preferably,probe 84 is oriented substantially perpendicularly with respect tobottom ridge 91. The diameter ofprobe 84 is reduced to approximately 0.5 mm to provide a better match to the high impedance ridges ofwaveguide 82.Antenna 80 further comprises a shortingplate 92 mounted at the rear ofwaveguide 82 and positioned with respect to feedprobe 84 so as to obtain the smoothest impedance match over the operating bandwidth of the antenna. Shortingplate 92 is provided with a 2.2mm diameter hole 93 to facilitate removal of air bubbles trapped inwaveguide 82 whenantenna 80 is immersed in the dielectric medium, and to permit alignment ofantenna 80 with respect to the target. The dimension ofhole 93 is determined by the bandwidth of the radiation to be transmitted, being sized so as to be below the cutoff frequency for the bandwidth of the radiation.
The dielectric offeed probe 84 is preferably inserted intoaperture 83 such that the dielectric is approximately even with the upper interior surface ofwaveguide 82. Final impedance matching is obtained by simultaneous adjustment of tuningscrews 96 and 97 and penetration of the dielectric intoaperture 83.
Antenna 80 is advantageously enclosed in a conventional doubleridged waveguide flange 99, which provides mechanical stability and means for mounting extensions ontoantenna 80. Preferably,flange 99 is machined withnotches 100 and 101 to permit connection offeed cable 86 ontoconnector 85, and access to tuningscrews 96 and 97.
In use,antenna 80 and the associatedflange 99 are advantageously mounted at the end of ahollow tube 102 which supportsantenna 80 and provides a conduit which protectscable 86.Cable 86 is terminated at the distal end oftube 102 in a conventionaltype N connector 104. To reduce the effect of reflection offtube 102,antenna 80 is supported 5 cm in front oftube 102 by means of a metal standoff 106 andconnector 107.Antenna 80 is designed to be operated totally immersed in the dielectric medium and have an operating bandwidth of 2000 MHF to 4000 MHF. The dimensions which have been cited hereinabove assume that the dielectric medium is water, which is preferably distilled and at a temperature of 32 C. If a medium with a different dielectric constant is to be used, then the dimensions would need to be altered accordingly. In general, if the medium has a dielectric constant lower than that of water, larger dimensions would be required, and conversely, if the medium has a dielectric constant higher than that of water, smaller dimensions would be required.
The various other components ofsystem 10 can be conventional. For example, a Hewlett-Packard 8690B oscillator, Hewlett-Packard 8699 sweep generator, Microlab/FXR Model DA-2FN power divider, Watkins-Johnson Model M1G product detector, Krohn-Hite Model 3343 filter, and a Hewlett-Packard 5451B analyzer may be employed foroscillator 20,generator 22,power divider 30,product detector 40,filter 50, andanalyzer 60, respectively.
It is also to be noted thatsystem 10 may also advantageously include various well-known and conventional devices, such as attenuators, filters and the like which are commonly included in any microwave system to improve the operating characteristic thereof. Since such devices are not an aspect of the present invention, a detailed description thereof has been omitted in the interests of clarity.
Turning to the operation ofsystem 10, when the time delay throughtest channel 32 andreference channel 34 is not the same, the instantaneous frequencies of the signals detected bydetector 40 will be different, and the magnitude of the frequency difference will be inversely proportional to the sweep time Ts, and directly proportional to the difference in propagation times in thechannels 32 and 34. Further, the amplitude of the direct path signal inchannel 32 detected bydetector 40 is a function of the attenuation through the target. More specifically, the general expression for the signal produced at the output offilter 50 resulting from a single ray path is as follows:
E = (αβA.sup.2 /2) cos[k.sub.f Tt - ω.sub.1 T - k.sub.f T.sup.2 ] [U(t-T) - U(t-T.sub.s)]
Where
ω1 = 2πf1 = Start frequency (radians/second)
ω2 = 2πf2 = Stop frequency (radians/second)
Ts = Sweep time (seconds)
T = Differential time delay between test and reference channels (seconds)
t = Time (seconds)
α = Attenuation through the path under study
β = Multiplier which is a function of the gain of the measurement system
A = Amplitude of the signal at the power divider output
kf = (ω2 - ω1)/Ts Radians/second2
The function U(x) is defined as follows:
U(x)=0 for x<0
U(x)=1 for x≧0
The result, for a single path, is a truncated sinusoidal waveform with an angular frequency equal to kf T radians/second and with a phase offset equal to (ω1 T + kf T2) radians.
If appropriate values for the above identified are chosen, such as for example:
Ts = 7.75 milliseconds; f1 = 2.0 GHz; and f2 = 4.0 GHz; the ω1 T term dominates the phase offset until the differential time delay T becomes very large (equivalent to a free space propagation distance of over 100 miles). Thus, for biologically relevant values of differential time delay, the time delay spectrum for a single path may be written as
E' = (αβA.sup.2 /2) cos [k.sub.f Tt - ω.sub.1 T] [U(t-T) - U(t-T.sub.s)]
For delays T less than the sweep time Ts, examination of the spectrum of the signal at the output ofproduct detector 40 yields an unambiguous measure of time delay through the target. Furthermore, since time of propagation through a particular path in the target uniquely determines the frequency of a spectral line in the time delay spectrum, multiple paths can be resolved on the basis of time-of-arrival information.
FIG. 3 illustrates a typical time delay spectrum produced at the output offilter 50 in asystem 10 utilizing smallapertured antennas 36 and 38 of the type illustrated in FIGS. 2a-2b. Thewaveform 70 constitutes the envelope of the individual spectral lines, which each represent the instantaneous difference in frequencies of the signals detected bydetector 40, and thus represents the time delay for a particular path of propagation intest channel 32. Thewaveform 70 thus represents a composite time delay spectrum for all paths of propagation intest channel 32. The direct ray path through the target corresponds to the spectral line having the highest amplitude at the lowest frequency, e.g. point 70A onwaveform 70 in FIG. 3. Withantennas 36 and 38 of sufficiently small aperture, such as antennas of the type illustrated in FIGS. 2a-2b, the resolution of the direct ray path is readily accomplished since the time delay spectrum peaks sharply, as shown in FIG. 3, at the spectral line corresponding to the direct ray path. If the apertures ofantennas 36 and 38 are not sufficiently small, resolution of the direct ray path is in principle still possible. However, additional analysis of the complex time delay spectrum which results is required, which becomes too involved to have practical utility, at least with respect to interrogation of biological targets, as the size of the antenna aperture increases. Once thesystem 10 is calibrated, as described in more detail hereinbelow, the time delay through the target may be determined directly from the frequency of the direct ray path spectral line. It is to be noted that the value of the time delay of the signal path provided byreference channel 34 may be chosen such that for a given biological target and environment, the output ofproduct detector 40, and hencewaveform 70, are in a frequency range, for example, the audio range, which is easily processed.
System 10 is calibrated by determining the propagation delays caused by the elements oftest channel 32 other than the target A. These delays may be either calculated theroretically, or determined empirically. Referring to FIG. 4, one method of empirically calibratingsystem 10 involves producing atime delay spectrum 72 withsystem 10 in its normal configuration. An element having a known time delay, e.g. a predetermined length of RG9/U coaxial cable, is inserted intotest channel 32 betweenpower divider 30 andantenna 36, and anothertime delay spectrum 74 is produced. The difference between the expected shift in the location ofspectrum 74 with respect tospectrum 72, based on the time delay of the introduced element, and the actual shift which occurs provides a measure of the time delay introduced by the elements oftest channel 32.
Tests conducted in connection with the preferred embodiment of the invention described hereinabove demonstrate that the measured data does not become ambiguous until the propagation time is equivalent to that of over 1400 miles in free space, which is manifestly adequate for biologically relevant targets. Additionally, the system is capable of discriminating between two ray paths whose differential time delay is on the order of 100 picoseconds, which corresponds to a differential path length of 6mm in brain tissue and the like.
Although the invention has been described with respect to an exemplary embodiment thereof, it will be understood that variations and modifications can be effected in the embodiment without departing from the scope or spirit of the invention.

Claims (7)

We claim:
1. A method of microwave time delay spectroscopy for remote interrogation of a biological target comprising the steps of:
generating a microwave signal which varies in frequency from a first frequency to a second frequency in a predetermined time period;
dividing said signal into first and second propagation signals;
simultaneously propagating said first propagation signal through a test channel and said second propagation signal through a reference channel, said test channel comprising a transmitting antenna for transmitting said first propagation signal through the target, and a receiving antenna for receiving said first propagation signal transmitted through the target, and said reference channel providing a fixed time delay of propagation therethrough;
detecting and mixing said first and second propagation signals following said propagation thereof to produce a time delay spectrum wherein the frequency of each spectral line represents the instantaneous difference in frequencies of the detected signals.
2. The method of claim 1 and further comprising the step of:
analyzing the time delay spectrum to select the spectral line having the highest amplitude at the lowest frequency and thereby select the spectral line corresponding to the direct ray path through the target.
3. Microwave time delay spectroscopic apparatus for remote interrogation of a biological target, comprising means for generating a microwave signal which varies in frequency from a first frequency to a second frequency in a predetermined time period, means for dividing said signal into first and second propagation signals, a test channel through which said first propagation signal is propagated, said test channel comprising a transmitting antenna for transmitting said first propagation signal through the target, and a receiving antenna for receiving said first propagation signal transmitted through the target, a reference channel through which said second propagation signal is propagated, said reference channel providing a fixed time delay of propagation therethrough, means for detecting and mixing said first and second propagation signals following propagation thereof through said test and reference channels, respectively, to produce a time delay spectrum wherein the frequency of each spectral line represents the instantaneous difference in frequencies of the detected propagation signals.
4. The apparatus of claim 3 and further comprising means for analyzing said time delay spectrum to select the spectral line having the highest amplitude at the lowest frequency and thereby select the spectral line corresponding to the direct ray path through the target.
5. The apparatus of claim 4 wherein said microwave signal generating means comprises a swept microwave oscillator and sweep generator, said signal dividing means comprises a power divider, said detecting and mixing means comprises a product detector, and said analyzing means comprises a fourier analyzer.
6. The apparatus of claim 3 wherein said transmitting and receiving antennas and the target are immersed in a high dielectric medium.
7. The apparatus of claim 6 wherein said high dielectric medium is water.
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Cited By (89)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US4307726A (en)*1978-04-241981-12-29Paulson James CDiagnostic evaluation, measurement, and analysis of functional activity in body organs that utilize transmembrane ion polarization and depolarization
US4391142A (en)*1980-06-101983-07-05The United States Of America As Represented By The Administrator Of The National Aeronautics And Space AdministrationFrequency tracked gated pulse technique for ultrasonic frequency
US4495953A (en)*1981-12-151985-01-29Bennewitz Paul FApparatus and method for producing and using directional, electrical and magnetic fields
US4552151A (en)*1981-07-021985-11-12Centre National De La Recherche ScientifiqueProcess and means for rapid point by point survey of body scanning radiation field
US4634963A (en)*1983-09-211987-01-06The Boeing CompanyMethod and apparatus for the testing of dielectric materials
US4641659A (en)*1979-06-011987-02-10Sepponen Raimo EMedical diagnostic microwave scanning apparatus
US4765179A (en)*1985-09-091988-08-23Solid State Farms, Inc.Radio frequency spectroscopy apparatus and method using multiple frequency waveforms
US4805627A (en)*1985-09-061989-02-21Siemens AktiengesellschaftMethod and apparatus for identifying the distribution of the dielectric constants in an object
US4820970A (en)*1986-09-151989-04-11Swanson Claude VApparatus and method for using microwave radiation to measure water content of a fluid
FR2639532A1 (en)*1988-10-051990-06-01Rizhskij Med Inst METHOD FOR DETERMINING THE DISPOSITION OF THE MOBILE LIMITS OF BIOLOGICAL TISSUE AND DEVICE FOR CARRYING OUT SAID METHOD
US4947127A (en)*1989-02-231990-08-07Texaco Inc.Microwave water cut monitor
US5006785A (en)*1986-04-231991-04-09Chevron Research CompanyMicrowave oil saturation scanner
US5109855A (en)*1986-07-141992-05-05Handelsgesellschaft Fur Medizin Und Technik Mit Beschrankter HaftungApparatus for detecting properties, differences and changes of human animal bodies
US5144236A (en)*1990-08-171992-09-01Strenk Scientific Consultants, Inc.Method and apparatus for r.f. tomography
US5157340A (en)*1990-08-031992-10-20Atomic Energy Of Canada LimitedMethod and apparatus for detecting soot concentration in particulate trap
US5198776A (en)*1991-06-261993-03-30Microwave Medical Systems, Inc.Microwave system for detecting gaseous emboli
WO1993018395A1 (en)*1992-03-101993-09-16Christopher BarnesApparatus for determining the physical and/or chemical properties of a sample, particularly of blood
US5315258A (en)*1989-01-131994-05-24Kajaani Elektroniikka OyMethod and apparatus for determining the moisture content of a material
US5363050A (en)*1990-08-311994-11-08Guo Wendy WQuantitative dielectric imaging system
GB2260407B (en)*1991-10-101994-11-30Christopher BarnesMethod and devices for A.C measurement on all electromagnetically permeable matter, preferably liquid blood
WO1995032665A1 (en)*1994-05-261995-12-07The Carolinas Heart InstituteMicrowave tomographic spectroscopy system and method
US5497099A (en)*1991-09-061996-03-05Engine Control Systems Ltd.Antenna system for soot detecting
US5583432A (en)*1994-04-111996-12-10Sci-Nostics LimitedElectrical method and apparatus for non-contact determination of physical and/or chemical properties of a sample, particularly of blood
US5829437A (en)*1994-07-011998-11-03Interstitial, Inc.Microwave method and system to detect and locate cancers in heterogenous tissues
US5841288A (en)*1996-02-121998-11-24Microwave Imaging System Technologies, Inc.Two-dimensional microwave imaging apparatus and methods
WO2003019207A1 (en)*2001-08-242003-03-06Rhino Analytics, L.L.C.Ultra-wide band pulse dispersion spectrometry method and apparatus providing multi-component composition analysis
US20030184404A1 (en)*2002-03-282003-10-02Mike AndrewsWaveguide adapter
US20040232935A1 (en)*2003-05-232004-11-25Craig StewartChuck for holding a device under test
US20040254457A1 (en)*2003-06-022004-12-16Van Der Weide Daniel WarrenApparatus and method for near-field imaging of tissue
US20050140386A1 (en)*2003-12-242005-06-30Eric StridActive wafer probe
US20050156610A1 (en)*2002-01-252005-07-21Peter NavratilProbe station
US20050179427A1 (en)*2000-09-052005-08-18Cascade Microtech, Inc.Probe station
US20050184744A1 (en)*1992-06-112005-08-25Cascademicrotech, Inc.Wafer probe station having a skirting component
US20060028200A1 (en)*2000-09-052006-02-09Cascade Microtech, Inc.Chuck for holding a device under test
US20060043962A1 (en)*2004-09-132006-03-02Terry BurchamDouble sided probing structures
US20060092505A1 (en)*2004-11-022006-05-04Umech Technologies, Co.Optically enhanced digital imaging system
US20060132157A1 (en)*1992-06-112006-06-22Cascade Microtech, Inc.Wafer probe station having environment control enclosure
US7078913B1 (en)*2003-12-312006-07-18The United States Of America As Represented By The Secretary Of AgricultureMultipath resistant microwave moisture sensor
US20060169897A1 (en)*2005-01-312006-08-03Cascade Microtech, Inc.Microscope system for testing semiconductors
US20060170441A1 (en)*2005-01-312006-08-03Cascade Microtech, Inc.Interface for testing semiconductors
US20060184041A1 (en)*2005-01-312006-08-17Cascade Microtech, Inc.System for testing semiconductors
US20060279299A1 (en)*2005-06-082006-12-14Cascade Microtech Inc.High frequency probe
US20060290357A1 (en)*2005-06-132006-12-28Richard CampbellWideband active-passive differential signal probe
US20070075724A1 (en)*2004-06-072007-04-05Cascade Microtech, Inc.Thermal optical chuck
US20070075716A1 (en)*2002-05-232007-04-05Cascade Microtech, Inc.Probe for testing a device under test
US20070109001A1 (en)*1995-04-142007-05-17Cascade Microtech, Inc.System for evaluating probing networks
US20070194778A1 (en)*2002-12-132007-08-23Cascade Microtech, Inc.Guarded tub enclosure
US20070194803A1 (en)*1997-05-282007-08-23Cascade Microtech, Inc.Probe holder for testing of a test device
US20070200580A1 (en)*2000-12-042007-08-30Cascade Microtech, Inc.Wafer probe
US20070205784A1 (en)*2003-05-062007-09-06Cascade Microtech, Inc.Switched suspended conductor and connection
US20070245536A1 (en)*1998-07-142007-10-25Cascade Microtech,, Inc.Membrane probing system
US20070285112A1 (en)*2006-06-122007-12-13Cascade Microtech, Inc.On-wafer test structures
US20080012578A1 (en)*2006-07-142008-01-17Cascade Microtech, Inc.System for detecting molecular structure and events
US7330041B2 (en)2004-06-142008-02-12Cascade Microtech, Inc.Localizing a temperature of a device for testing
US20080042673A1 (en)*2002-11-132008-02-21Cascade Microtech, Inc.Probe for combined signals
US20080042671A1 (en)*2003-05-232008-02-21Cascade Microtech, Inc.Probe for testing a device under test
US20080048693A1 (en)*1997-06-062008-02-28Cascade Microtech, Inc.Probe station having multiple enclosures
US20080054922A1 (en)*2002-11-082008-03-06Cascade Microtech, Inc.Probe station with low noise characteristics
US7355420B2 (en)2001-08-212008-04-08Cascade Microtech, Inc.Membrane probing system
US7362115B2 (en)2003-12-242008-04-22Cascade Microtech, Inc.Chuck with integrated wafer support
US7368927B2 (en)2004-07-072008-05-06Cascade Microtech, Inc.Probe head having a membrane suspended probe
US7403025B2 (en)2000-02-252008-07-22Cascade Microtech, Inc.Membrane probing system
US7403028B2 (en)2006-06-122008-07-22Cascade Microtech, Inc.Test structure and probe for differential signals
US20080218187A1 (en)*2003-10-222008-09-11Cascade Microtech, Inc.Probe testing structure
US7498828B2 (en)2002-11-252009-03-03Cascade Microtech, Inc.Probe station with low inductance path
US7533462B2 (en)1999-06-042009-05-19Cascade Microtech, Inc.Method of constructing a membrane probe
US7541821B2 (en)1996-08-082009-06-02Cascade Microtech, Inc.Membrane probing system with local contact scrub
US20090189623A1 (en)*2007-08-082009-07-30Campbell Richard LDifferential waveguide probe
US7609077B2 (en)2006-06-092009-10-27Cascade Microtech, Inc.Differential signal probe with integral balun
US7616017B2 (en)1999-06-302009-11-10Cascade Microtech, Inc.Probe station thermal chuck with shielding for capacitive current
US20100085069A1 (en)*2008-10-062010-04-08Smith Kenneth RImpedance optimized interface for membrane probe application
US7723999B2 (en)2006-06-122010-05-25Cascade Microtech, Inc.Calibration structures for differential signal probing
US20100127725A1 (en)*2008-11-212010-05-27Smith Kenneth RReplaceable coupon for a probing apparatus
US20100127714A1 (en)*2008-11-242010-05-27Cascade Microtech, Inc.Test system for flicker noise
US7764072B2 (en)2006-06-122010-07-27Cascade Microtech, Inc.Differential signal probing system
US20110152664A1 (en)*2008-06-022011-06-23Rohde & Schwarz Gmbh & Co. KgMeasuring device and a method for determining movement in a tissue
US8717430B2 (en)2010-04-262014-05-06Medtronic Navigation, Inc.System and method for radio-frequency imaging, registration, and localization
US9072449B2 (en)2013-03-152015-07-07Emtensor GmbhWearable/man-portable electromagnetic tomographic imaging
US9128494B2 (en)2011-11-172015-09-08Microsemi CorporationApparatus and method for assessing volumetric moisture content and controlling an irrigator
US20160195608A1 (en)*2015-01-052016-07-07Robert Bosch GmbhDevice and method for ascertaining a property of an object
US9414749B2 (en)2012-11-212016-08-16Emtensor GmbhElectromagnetic tomography solutions for scanning head
US9724010B2 (en)2010-07-082017-08-08Emtensor GmbhSystems and methods of 4D electromagnetic tomographic (EMT) differential (dynamic) fused imaging
US10209387B2 (en)*2014-09-192019-02-19Kabushiki Kaisha ToshibaScreening device
WO2019209556A1 (en)2018-04-252019-10-31Spectrohm, Inc.Tomographic systems and methods for determining characteristics of inhomogenous specimens using guided electromagnetic fields
US10473762B2 (en)*2016-08-152019-11-12Microsoft Technology Licensing, LlcWireless radio module
US10492700B2 (en)2013-03-152019-12-03Emtensor GmbhMethods of assessing the normalcy of biological tissue
US10921361B2 (en)2015-10-162021-02-16Emtensor GmbhElectromagnetic interference pattern recognition tomography
US11253164B2 (en)2016-11-232022-02-22Emtensor GmbhUse of electromagnetic field for tomographic imaging of head
US12228535B2 (en)2018-04-252025-02-18Spectrohm, Inc.Methods for determining regional impedance characteristics of inhomogenous specimens using guided electromagnetic fields

Citations (5)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US3432752A (en)*1965-07-291969-03-11North American RockwellResonant frequency measurement apparatus having a gated frequency indicating means
US3441843A (en)*1966-06-081969-04-29Claire R WainwrightSystem for tilting frequency marker in sweep generator display
US3445762A (en)*1963-03-131969-05-20Singer CoFrequency response testing
US3586969A (en)*1969-06-131971-06-22Bell Telephone Labor IncSystem and method for measuring a circuit's step function time response
US3956695A (en)*1974-07-221976-05-11Stamm Michael EMicrowave spectral identification of cells

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US3445762A (en)*1963-03-131969-05-20Singer CoFrequency response testing
US3432752A (en)*1965-07-291969-03-11North American RockwellResonant frequency measurement apparatus having a gated frequency indicating means
US3441843A (en)*1966-06-081969-04-29Claire R WainwrightSystem for tilting frequency marker in sweep generator display
US3586969A (en)*1969-06-131971-06-22Bell Telephone Labor IncSystem and method for measuring a circuit's step function time response
US3956695A (en)*1974-07-221976-05-11Stamm Michael EMicrowave spectral identification of cells

Cited By (203)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US4307726A (en)*1978-04-241981-12-29Paulson James CDiagnostic evaluation, measurement, and analysis of functional activity in body organs that utilize transmembrane ion polarization and depolarization
US4641659A (en)*1979-06-011987-02-10Sepponen Raimo EMedical diagnostic microwave scanning apparatus
US4391142A (en)*1980-06-101983-07-05The United States Of America As Represented By The Administrator Of The National Aeronautics And Space AdministrationFrequency tracked gated pulse technique for ultrasonic frequency
US4552151A (en)*1981-07-021985-11-12Centre National De La Recherche ScientifiqueProcess and means for rapid point by point survey of body scanning radiation field
US4495953A (en)*1981-12-151985-01-29Bennewitz Paul FApparatus and method for producing and using directional, electrical and magnetic fields
US4634963A (en)*1983-09-211987-01-06The Boeing CompanyMethod and apparatus for the testing of dielectric materials
US4805627A (en)*1985-09-061989-02-21Siemens AktiengesellschaftMethod and apparatus for identifying the distribution of the dielectric constants in an object
US4765179A (en)*1985-09-091988-08-23Solid State Farms, Inc.Radio frequency spectroscopy apparatus and method using multiple frequency waveforms
US5006785A (en)*1986-04-231991-04-09Chevron Research CompanyMicrowave oil saturation scanner
US5109855A (en)*1986-07-141992-05-05Handelsgesellschaft Fur Medizin Und Technik Mit Beschrankter HaftungApparatus for detecting properties, differences and changes of human animal bodies
US5361762A (en)*1986-07-141994-11-08Handelsgesellschaft Fur Medizin Und Technik Mit Beschrankter HaftungApparatus for detecting properties, differences and changes of human or animal bodies
US4820970A (en)*1986-09-151989-04-11Swanson Claude VApparatus and method for using microwave radiation to measure water content of a fluid
FR2639532A1 (en)*1988-10-051990-06-01Rizhskij Med Inst METHOD FOR DETERMINING THE DISPOSITION OF THE MOBILE LIMITS OF BIOLOGICAL TISSUE AND DEVICE FOR CARRYING OUT SAID METHOD
US5315258A (en)*1989-01-131994-05-24Kajaani Elektroniikka OyMethod and apparatus for determining the moisture content of a material
US4947127A (en)*1989-02-231990-08-07Texaco Inc.Microwave water cut monitor
US5157340A (en)*1990-08-031992-10-20Atomic Energy Of Canada LimitedMethod and apparatus for detecting soot concentration in particulate trap
US5144236A (en)*1990-08-171992-09-01Strenk Scientific Consultants, Inc.Method and apparatus for r.f. tomography
US5363050A (en)*1990-08-311994-11-08Guo Wendy WQuantitative dielectric imaging system
US5198776A (en)*1991-06-261993-03-30Microwave Medical Systems, Inc.Microwave system for detecting gaseous emboli
US5497099A (en)*1991-09-061996-03-05Engine Control Systems Ltd.Antenna system for soot detecting
GB2260407B (en)*1991-10-101994-11-30Christopher BarnesMethod and devices for A.C measurement on all electromagnetically permeable matter, preferably liquid blood
WO1993018395A1 (en)*1992-03-101993-09-16Christopher BarnesApparatus for determining the physical and/or chemical properties of a sample, particularly of blood
AU677001B2 (en)*1992-03-101997-04-10Christopher BarnesApparatus for determining the physical and/or chemical properties of a sample, particularly of blood
US7595632B2 (en)1992-06-112009-09-29Cascade Microtech, Inc.Wafer probe station having environment control enclosure
US7348787B2 (en)1992-06-112008-03-25Cascade Microtech, Inc.Wafer probe station having environment control enclosure
US20060132157A1 (en)*1992-06-112006-06-22Cascade Microtech, Inc.Wafer probe station having environment control enclosure
US20080106290A1 (en)*1992-06-112008-05-08Cascade Microtech, Inc.Wafer probe station having environment control enclosure
US20050184744A1 (en)*1992-06-112005-08-25Cascademicrotech, Inc.Wafer probe station having a skirting component
US7589518B2 (en)1992-06-112009-09-15Cascade Microtech, Inc.Wafer probe station having a skirting component
US7492147B2 (en)1992-06-112009-02-17Cascade Microtech, Inc.Wafer probe station having a skirting component
US5583432A (en)*1994-04-111996-12-10Sci-Nostics LimitedElectrical method and apparatus for non-contact determination of physical and/or chemical properties of a sample, particularly of blood
RU2238033C2 (en)*1994-05-262004-10-20Дзе Каролинас Харт ИнститьютMethod and microwave tomograph device for carrying out spectroscopy examination
CN1123320C (en)*1994-05-262003-10-08卡罗琳娜丝心脏研究所 Microwave tomography spectrum system and method
WO1995032665A1 (en)*1994-05-261995-12-07The Carolinas Heart InstituteMicrowave tomographic spectroscopy system and method
US5715819A (en)*1994-05-261998-02-10The Carolinas Heart InstituteMicrowave tomographic spectroscopy system and method
US5829437A (en)*1994-07-011998-11-03Interstitial, Inc.Microwave method and system to detect and locate cancers in heterogenous tissues
US20070109001A1 (en)*1995-04-142007-05-17Cascade Microtech, Inc.System for evaluating probing networks
US7321233B2 (en)1995-04-142008-01-22Cascade Microtech, Inc.System for evaluating probing networks
US5841288A (en)*1996-02-121998-11-24Microwave Imaging System Technologies, Inc.Two-dimensional microwave imaging apparatus and methods
US7893704B2 (en)1996-08-082011-02-22Cascade Microtech, Inc.Membrane probing structure with laterally scrubbing contacts
US20090224783A1 (en)*1996-08-082009-09-10Cascade Microtech, Inc.Membrane probing system with local contact scrub
US7541821B2 (en)1996-08-082009-06-02Cascade Microtech, Inc.Membrane probing system with local contact scrub
US7504842B2 (en)1997-05-282009-03-17Cascade Microtech, Inc.Probe holder for testing of a test device
US20070194803A1 (en)*1997-05-282007-08-23Cascade Microtech, Inc.Probe holder for testing of a test device
US7436170B2 (en)1997-06-062008-10-14Cascade Microtech, Inc.Probe station having multiple enclosures
US7626379B2 (en)1997-06-062009-12-01Cascade Microtech, Inc.Probe station having multiple enclosures
US20080048693A1 (en)*1997-06-062008-02-28Cascade Microtech, Inc.Probe station having multiple enclosures
US7681312B2 (en)1998-07-142010-03-23Cascade Microtech, Inc.Membrane probing system
US7761986B2 (en)1998-07-142010-07-27Cascade Microtech, Inc.Membrane probing method using improved contact
US20070283555A1 (en)*1998-07-142007-12-13Cascade Microtech, Inc.Membrane probing system
US8451017B2 (en)1998-07-142013-05-28Cascade Microtech, Inc.Membrane probing method using improved contact
US20070245536A1 (en)*1998-07-142007-10-25Cascade Microtech,, Inc.Membrane probing system
US7533462B2 (en)1999-06-042009-05-19Cascade Microtech, Inc.Method of constructing a membrane probe
US7616017B2 (en)1999-06-302009-11-10Cascade Microtech, Inc.Probe station thermal chuck with shielding for capacitive current
US7403025B2 (en)2000-02-252008-07-22Cascade Microtech, Inc.Membrane probing system
US7352168B2 (en)2000-09-052008-04-01Cascade Microtech, Inc.Chuck for holding a device under test
US7554322B2 (en)2000-09-052009-06-30Cascade Microtech, Inc.Probe station
US7518358B2 (en)2000-09-052009-04-14Cascade Microtech, Inc.Chuck for holding a device under test
US20050179427A1 (en)*2000-09-052005-08-18Cascade Microtech, Inc.Probe station
US20060028200A1 (en)*2000-09-052006-02-09Cascade Microtech, Inc.Chuck for holding a device under test
US20100109695A1 (en)*2000-09-052010-05-06Cascade Microtech, Inc.Chuck for holding a device under test
US20080042669A1 (en)*2000-09-052008-02-21Cascade Microtech, Inc.Probe station
US20080054884A1 (en)*2000-09-052008-03-06Cascade Microtech, Inc.Chuck for holding a device under test
US7501810B2 (en)2000-09-052009-03-10Cascade Microtech, Inc.Chuck for holding a device under test
US7423419B2 (en)2000-09-052008-09-09Cascade Microtech, Inc.Chuck for holding a device under test
US7688062B2 (en)2000-09-052010-03-30Cascade Microtech, Inc.Probe station
US20080042642A1 (en)*2000-09-052008-02-21Cascade Microtech, Inc.Chuck for holding a device under test
US20080042670A1 (en)*2000-09-052008-02-21Cascade Microtech, Inc.Probe station
US20080042376A1 (en)*2000-09-052008-02-21Cascade Microtech, Inc.Probe station
US7514915B2 (en)2000-09-052009-04-07Cascade Microtech, Inc.Chuck for holding a device under test
US7969173B2 (en)2000-09-052011-06-28Cascade Microtech, Inc.Chuck for holding a device under test
US20080042674A1 (en)*2000-09-052008-02-21John DunkleeChuck for holding a device under test
US7456646B2 (en)2000-12-042008-11-25Cascade Microtech, Inc.Wafer probe
US7761983B2 (en)2000-12-042010-07-27Cascade Microtech, Inc.Method of assembling a wafer probe
US7495461B2 (en)2000-12-042009-02-24Cascade Microtech, Inc.Wafer probe
US20070200580A1 (en)*2000-12-042007-08-30Cascade Microtech, Inc.Wafer probe
US7688097B2 (en)2000-12-042010-03-30Cascade Microtech, Inc.Wafer probe
US7355420B2 (en)2001-08-212008-04-08Cascade Microtech, Inc.Membrane probing system
US7492175B2 (en)2001-08-212009-02-17Cascade Microtech, Inc.Membrane probing system
US20040239337A1 (en)*2001-08-242004-12-02Buford Randall JeanUltra-wide band pulse dispersion spectrometry method and apparatus providing multi-component composition analysis
US6987393B2 (en)*2001-08-242006-01-17Rhino Analytics, L.P.Ultra-wide band pulse dispersion spectrometry method and apparatus providing multi-component composition analysis
AU2002323311B2 (en)*2001-08-242008-01-31Rhino Analytics, L.L.C.Ultra-wide band pulse dispersion spectrometry method and apparatus providing multi-component composition analysis
WO2003019207A1 (en)*2001-08-242003-03-06Rhino Analytics, L.L.C.Ultra-wide band pulse dispersion spectrometry method and apparatus providing multi-component composition analysis
US7368925B2 (en)2002-01-252008-05-06Cascade Microtech, Inc.Probe station with two platens
US20080042675A1 (en)*2002-01-252008-02-21Cascade Microtech, Inc.Probe station
US20050156610A1 (en)*2002-01-252005-07-21Peter NavratilProbe station
US20030184404A1 (en)*2002-03-282003-10-02Mike AndrewsWaveguide adapter
US20080024149A1 (en)*2002-05-232008-01-31Cascade Microtech, Inc.Probe for testing a device under test
US7518387B2 (en)2002-05-232009-04-14Cascade Microtech, Inc.Shielded probe for testing a device under test
US7482823B2 (en)2002-05-232009-01-27Cascade Microtech, Inc.Shielded probe for testing a device under test
US7489149B2 (en)2002-05-232009-02-10Cascade Microtech, Inc.Shielded probe for testing a device under test
US7436194B2 (en)2002-05-232008-10-14Cascade Microtech, Inc.Shielded probe with low contact resistance for testing a device under test
US20070075716A1 (en)*2002-05-232007-04-05Cascade Microtech, Inc.Probe for testing a device under test
US7304488B2 (en)2002-05-232007-12-04Cascade Microtech, Inc.Shielded probe for high-frequency testing of a device under test
US7550984B2 (en)2002-11-082009-06-23Cascade Microtech, Inc.Probe station with low noise characteristics
US20080054922A1 (en)*2002-11-082008-03-06Cascade Microtech, Inc.Probe station with low noise characteristics
US20080074129A1 (en)*2002-11-132008-03-27Cascade Microtech, Inc.Probe for combined signals
US7417446B2 (en)2002-11-132008-08-26Cascade Microtech, Inc.Probe for combined signals
US7453276B2 (en)2002-11-132008-11-18Cascade Microtech, Inc.Probe for combined signals
US20080042673A1 (en)*2002-11-132008-02-21Cascade Microtech, Inc.Probe for combined signals
US7498828B2 (en)2002-11-252009-03-03Cascade Microtech, Inc.Probe station with low inductance path
US20070194778A1 (en)*2002-12-132007-08-23Cascade Microtech, Inc.Guarded tub enclosure
US7639003B2 (en)2002-12-132009-12-29Cascade Microtech, Inc.Guarded tub enclosure
US20070205784A1 (en)*2003-05-062007-09-06Cascade Microtech, Inc.Switched suspended conductor and connection
US7468609B2 (en)2003-05-062008-12-23Cascade Microtech, Inc.Switched suspended conductor and connection
US7498829B2 (en)2003-05-232009-03-03Cascade Microtech, Inc.Shielded probe for testing a device under test
US7876115B2 (en)2003-05-232011-01-25Cascade Microtech, Inc.Chuck for holding a device under test
US7492172B2 (en)2003-05-232009-02-17Cascade Microtech, Inc.Chuck for holding a device under test
US7898273B2 (en)2003-05-232011-03-01Cascade Microtech, Inc.Probe for testing a device under test
US20090153167A1 (en)*2003-05-232009-06-18Craig StewartChuck for holding a device under test
US20080042671A1 (en)*2003-05-232008-02-21Cascade Microtech, Inc.Probe for testing a device under test
US7501842B2 (en)2003-05-232009-03-10Cascade Microtech, Inc.Shielded probe for testing a device under test
US20040232935A1 (en)*2003-05-232004-11-25Craig StewartChuck for holding a device under test
US20090267625A1 (en)*2003-05-232009-10-29Cascade Microtech, Inc.Probe for testing a device under test
US7725151B2 (en)*2003-06-022010-05-25Van Der Weide Daniel WarrenApparatus and method for near-field imaging of tissue
US20040254457A1 (en)*2003-06-022004-12-16Van Der Weide Daniel WarrenApparatus and method for near-field imaging of tissue
US20080218187A1 (en)*2003-10-222008-09-11Cascade Microtech, Inc.Probe testing structure
US8069491B2 (en)2003-10-222011-11-29Cascade Microtech, Inc.Probe testing structure
US7759953B2 (en)2003-12-242010-07-20Cascade Microtech, Inc.Active wafer probe
US20080157796A1 (en)*2003-12-242008-07-03Peter AndrewsChuck with integrated wafer support
US20080309358A1 (en)*2003-12-242008-12-18Cascade Microtech, Inc.Active wafer probe
US20050140386A1 (en)*2003-12-242005-06-30Eric StridActive wafer probe
US7688091B2 (en)2003-12-242010-03-30Cascade Microtech, Inc.Chuck with integrated wafer support
US7362115B2 (en)2003-12-242008-04-22Cascade Microtech, Inc.Chuck with integrated wafer support
US7078913B1 (en)*2003-12-312006-07-18The United States Of America As Represented By The Secretary Of AgricultureMultipath resistant microwave moisture sensor
US20070075724A1 (en)*2004-06-072007-04-05Cascade Microtech, Inc.Thermal optical chuck
US7504823B2 (en)2004-06-072009-03-17Cascade Microtech, Inc.Thermal optical chuck
US7330041B2 (en)2004-06-142008-02-12Cascade Microtech, Inc.Localizing a temperature of a device for testing
US7514944B2 (en)2004-07-072009-04-07Cascade Microtech, Inc.Probe head having a membrane suspended probe
US7368927B2 (en)2004-07-072008-05-06Cascade Microtech, Inc.Probe head having a membrane suspended probe
US20080157795A1 (en)*2004-07-072008-07-03Cascade Microtech, Inc.Probe head having a membrane suspended probe
US8013623B2 (en)2004-09-132011-09-06Cascade Microtech, Inc.Double sided probing structures
US7420381B2 (en)2004-09-132008-09-02Cascade Microtech, Inc.Double sided probing structures
US20080265925A1 (en)*2004-09-132008-10-30Cascade Microtech, Inc.Double sided probing structures
US20060043962A1 (en)*2004-09-132006-03-02Terry BurchamDouble sided probing structures
US20060092505A1 (en)*2004-11-022006-05-04Umech Technologies, Co.Optically enhanced digital imaging system
US20090134896A1 (en)*2005-01-312009-05-28Cascade Microtech, Inc.Interface for testing semiconductors
US20060169897A1 (en)*2005-01-312006-08-03Cascade Microtech, Inc.Microscope system for testing semiconductors
US7898281B2 (en)2005-01-312011-03-01Cascade Mircotech, Inc.Interface for testing semiconductors
US7656172B2 (en)2005-01-312010-02-02Cascade Microtech, Inc.System for testing semiconductors
US7940069B2 (en)2005-01-312011-05-10Cascade Microtech, Inc.System for testing semiconductors
US20060170441A1 (en)*2005-01-312006-08-03Cascade Microtech, Inc.Interface for testing semiconductors
US20060184041A1 (en)*2005-01-312006-08-17Cascade Microtech, Inc.System for testing semiconductors
US20100097467A1 (en)*2005-01-312010-04-22Cascade Microtech, Inc.System for testing semiconductors
US20060279299A1 (en)*2005-06-082006-12-14Cascade Microtech Inc.High frequency probe
US20090079451A1 (en)*2005-06-082009-03-26Cascade Microtech, Inc.High frequency probe
US7449899B2 (en)2005-06-082008-11-11Cascade Microtech, Inc.Probe for high frequency signals
US20060290357A1 (en)*2005-06-132006-12-28Richard CampbellWideband active-passive differential signal probe
US7619419B2 (en)2005-06-132009-11-17Cascade Microtech, Inc.Wideband active-passive differential signal probe
US7609077B2 (en)2006-06-092009-10-27Cascade Microtech, Inc.Differential signal probe with integral balun
US7723999B2 (en)2006-06-122010-05-25Cascade Microtech, Inc.Calibration structures for differential signal probing
US20070285112A1 (en)*2006-06-122007-12-13Cascade Microtech, Inc.On-wafer test structures
US7750652B2 (en)2006-06-122010-07-06Cascade Microtech, Inc.Test structure and probe for differential signals
US7403028B2 (en)2006-06-122008-07-22Cascade Microtech, Inc.Test structure and probe for differential signals
US7764072B2 (en)2006-06-122010-07-27Cascade Microtech, Inc.Differential signal probing system
US20090021273A1 (en)*2006-06-122009-01-22Cascade Microtech, Inc.On-wafer test structures
US7443186B2 (en)2006-06-122008-10-28Cascade Microtech, Inc.On-wafer test structures for differential signals
US20080012578A1 (en)*2006-07-142008-01-17Cascade Microtech, Inc.System for detecting molecular structure and events
US7876114B2 (en)2007-08-082011-01-25Cascade Microtech, Inc.Differential waveguide probe
US20090189623A1 (en)*2007-08-082009-07-30Campbell Richard LDifferential waveguide probe
US20110152664A1 (en)*2008-06-022011-06-23Rohde & Schwarz Gmbh & Co. KgMeasuring device and a method for determining movement in a tissue
US7888957B2 (en)2008-10-062011-02-15Cascade Microtech, Inc.Probing apparatus with impedance optimized interface
US20100085069A1 (en)*2008-10-062010-04-08Smith Kenneth RImpedance optimized interface for membrane probe application
US10267848B2 (en)2008-11-212019-04-23Formfactor Beaverton, Inc.Method of electrically contacting a bond pad of a device under test with a probe
US20100127725A1 (en)*2008-11-212010-05-27Smith Kenneth RReplaceable coupon for a probing apparatus
US9429638B2 (en)2008-11-212016-08-30Cascade Microtech, Inc.Method of replacing an existing contact of a wafer probing assembly
US8410806B2 (en)2008-11-212013-04-02Cascade Microtech, Inc.Replaceable coupon for a probing apparatus
US8319503B2 (en)2008-11-242012-11-27Cascade Microtech, Inc.Test apparatus for measuring a characteristic of a device under test
US20100127714A1 (en)*2008-11-242010-05-27Cascade Microtech, Inc.Test system for flicker noise
US10939053B2 (en)2010-04-262021-03-02Medtronic Navigation, Inc.System and method for radio-frequency imaging, registration, and localization
US8717430B2 (en)2010-04-262014-05-06Medtronic Navigation, Inc.System and method for radio-frequency imaging, registration, and localization
US9724010B2 (en)2010-07-082017-08-08Emtensor GmbhSystems and methods of 4D electromagnetic tomographic (EMT) differential (dynamic) fused imaging
US9128494B2 (en)2011-11-172015-09-08Microsemi CorporationApparatus and method for assessing volumetric moisture content and controlling an irrigator
US10980421B2 (en)2012-11-212021-04-20Emtensor GmbhElectromagnetic tomography solutions for scanning head
US11607134B2 (en)2012-11-212023-03-21Emtensor GmbhEmergency electromagnetic tomography solutions for scanning head
US9675255B2 (en)2012-11-212017-06-13Emtensor GmbhElectromagnetic tomography solutions for scanning head
US9675254B2 (en)2012-11-212017-06-13Emtensor GmbhElectromagnetic tomography solutions for scanning head
US9414749B2 (en)2012-11-212016-08-16Emtensor GmbhElectromagnetic tomography solutions for scanning head
US9924873B2 (en)2012-11-212018-03-27Emtensor GmbhElectromagnetic tomography solutions for scanning head
US11517214B2 (en)2013-03-152022-12-06Emtensor GmbhMethods of identifying and locating tissue abnormalities in a biological tissue
US9414764B2 (en)2013-03-152016-08-16Emtensor GmbhWearable/man-portable electromagnetic tomographic imaging
US10492700B2 (en)2013-03-152019-12-03Emtensor GmbhMethods of assessing the normalcy of biological tissue
US11806121B2 (en)2013-03-152023-11-07Emtensor GmbhMethods of identifying and locating tissue abnormalities in a biological tissue
US9414763B2 (en)2013-03-152016-08-16Emtensor GmbhWearable/man-portable electromagnetic tomographic imaging
US9072449B2 (en)2013-03-152015-07-07Emtensor GmbhWearable/man-portable electromagnetic tomographic imaging
US10980435B2 (en)2013-03-152021-04-20Emtensor GmbhMethods of identifying and locating tissue abnormalities in a biological tissue
US10209387B2 (en)*2014-09-192019-02-19Kabushiki Kaisha ToshibaScreening device
US20160195608A1 (en)*2015-01-052016-07-07Robert Bosch GmbhDevice and method for ascertaining a property of an object
US11892491B2 (en)2015-10-162024-02-06Emtensor GmbhElectromagnetic interference pattern recognition tomography
US10921361B2 (en)2015-10-162021-02-16Emtensor GmbhElectromagnetic interference pattern recognition tomography
US10473762B2 (en)*2016-08-152019-11-12Microsoft Technology Licensing, LlcWireless radio module
US11253164B2 (en)2016-11-232022-02-22Emtensor GmbhUse of electromagnetic field for tomographic imaging of head
US11350841B2 (en)2016-11-232022-06-07Emtensorg GmbhUse of electromagnetic field for tomographic imaging of head
US11350842B2 (en)2016-11-232022-06-07Emtensor GmbhUse of electromagnetic field for tomographic imaging of head
US11344216B2 (en)2016-11-232022-05-31Emtensor GmbhUse of electromagnetic field for tomographic imaging of head
US11883145B2 (en)2016-11-232024-01-30Emtensor GmbhUse of electromagnetic field for tomographic imaging of head
US12290347B2 (en)2016-11-232025-05-06Emtensor GmbhUse of electromagnetic field for tomographic imaging of head
CN112020644A (en)*2018-04-252020-12-01斯派克特罗姆公司Tomography system and method for determining characteristics of non-uniform sample using guided electromagnetic field
US10542906B2 (en)2018-04-252020-01-28Spectrohm, Inc.Tomographic systems and methods for determining characteristics of inhomogenous specimens using guided electromagnetic fields
WO2019209556A1 (en)2018-04-252019-10-31Spectrohm, Inc.Tomographic systems and methods for determining characteristics of inhomogenous specimens using guided electromagnetic fields
US11925448B2 (en)2018-04-252024-03-12Spectrohm, Inc.Tomographic systems for determining characteristics of inhomogeneous specimens using guided electromagnetic fields
US12228535B2 (en)2018-04-252025-02-18Spectrohm, Inc.Methods for determining regional impedance characteristics of inhomogenous specimens using guided electromagnetic fields
US12310712B2 (en)2018-04-252025-05-27Spectrohm, Inc.Tomographic systems for spatial and temporal control of an electromagnetic field to image a specimen having regions of different dielectric constants

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